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Social Media Analytics for User Behavior Modeling (A Task Heterogeneity Perspective)

List Price: $68.99
SKU:
9781032175782
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  • Product Details

    Author:
    Arun Reddy Nelakurthi, Jingrui He
    Format:
    Paperback
    Pages:
    116
    Publisher:
    CRC Press (September 30, 2021)
    Language:
    English
    ISBN-13:
    9781032175782
    Weight:
    6.5oz
    Dimensions:
    6.125" x 9.1875"
    File:
    TAYLORFRANCIS-TayFran_260403050944986-20260403.xml
    Folder:
    TAYLORFRANCIS
    List Price:
    $68.99
    Series:
    Data-Enabled Engineering
    Case Pack:
    10
    As low as:
    $65.54
    Publisher Identifier:
    P-CRC
    Discount Code:
    H
    Audience:
    Professional and scholarly
    Country of Origin:
    United States
    Pub Discount:
    30
    Imprint:
    CRC Press
  • Overview



    Winner of the "Outstanding Academic Title" recognition by Choice for the 2020 OAT Awards.



    The Choice OAT Award represents the highest caliber of scholarly titles that have been reviewed by Choice and conveys the extraordinary recognition of the academic community.





    In recent years social media has gained significant popularity and has become an essential medium of communication. Such user-generated content provides an excellent scenario for applying the metaphor of mining any information. Transfer learning is a research problem in machine learning that focuses on leveraging the knowledge gained while solving one problem and applying it to a different, but related problem.



    Features:







    • Offers novel frameworks to study user behavior and for addressing and explaining task heterogeneity






    • Presents a detailed study of existing research






    • Provides convergence and complexity analysis of the frameworks






    • Includes algorithms to implement the proposed research work






    • Covers extensive empirical analysis






    Social Media Analytics for User Behavior Modeling: A Task Heterogeneity Perspective is a guide to user behavior modeling in heterogeneous settings and is of great use to the machine learning community.